Lattice-Boltzmann simulations of the dynamics of polymer solutions in periodic and confined geometries

被引:120
作者
Usta, OB [1 ]
Ladd, AJC [1 ]
Butler, JE [1 ]
机构
[1] Univ Florida, Dept Chem Engn, Gainesville, FL 32611 USA
基金
美国国家科学基金会;
关键词
D O I
10.1063/1.1854151
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A numerical method to simulate the dynamics of polymer solutions in confined geometries has been implemented and tested. The method combines a fluctuating lattice-Boltzmann model of the solvent [Ladd, Phys. Rev. Lett. 70, 1339 (1993)] with a point-particle model of the polymer chains. A friction term couples the monomers to the fluid [Ahlrichs and Dunweg, J. Chem. Phys. 111, 8225 (1999)], providing both the hydrodynamic interactions between the monomers and the correlated random forces. The coupled equations for particles and fluid are solved on an inertial time scale, which proves to be surprisingly simple and efficient, avoiding the costly linear algebra associated with Brownian dynamics. Complex confined geometries can be represented by a straightforward mapping of the boundary surfaces onto a regular three-dimensional grid. The hydrodynamic interactions between monomers are shown to compare well with solutions of the Stokes equations down to distances of the order of the grid spacing. Numerical results are presented for the radius of gyration, end-to-end distance, and diffusion coefficient of an isolated polymer chain, ranging from 16 to 1024 monomers in length. The simulations are in excellent agreement with renormalization group calculations for an excluded volume chain. We show that hydrodynamic interactions in large polymers can be systematically coarse-grained to substantially reduce the computational cost of the simulation. Finally, we examine the effects of confinement and flow on the polymer distribution and diffusion constant in a narrow channel. Our results support the qualitative conclusions of recent Brownian dynamics simulations of confined polymers [Jendrejack et al., J. Chem. Phys. 119, 1165 (2003) and Jendrejack et al., J. Chem. Phys. 120, 2513 (2004)]. (C) 2005 American Institute of Physics.
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页数:11
相关论文
共 37 条
[1]   Simulation of a single polymer chain in solution by combining lattice Boltzmann and molecular dynamics [J].
Ahlrichs, P ;
Dünweg, B .
JOURNAL OF CHEMICAL PHYSICS, 1999, 111 (17) :8225-8239
[2]   Screening of hydrodynamic interactions in semidilute polymer solutions:: A computer simulation study -: art. no. 040501 [J].
Ahlrichs, P ;
Everaers, R ;
Dünweg, B .
PHYSICAL REVIEW E, 2001, 64 (04) :4-405014
[3]   Direct analysis of particulate suspensions with inertia using the discrete Boltzmann equation [J].
Aidun, CK ;
Lu, YN ;
Ding, EJ .
JOURNAL OF FLUID MECHANICS, 1998, 373 :287-311
[4]   Transport in sandstone: A study based on three dimensional microtomography [J].
Auzerais, FM ;
Dunsmuir, J ;
Ferreol, BB ;
Martys, N ;
Olson, J ;
Ramakrishnan, TS ;
Rothman, DH ;
Schwartz, LM .
GEOPHYSICAL RESEARCH LETTERS, 1996, 23 (07) :705-708
[5]   DYNAMICS OF CONFINED POLYMER-CHAINS [J].
BROCHARD, F ;
DEGENNES, PG .
JOURNAL OF CHEMICAL PHYSICS, 1977, 67 (01) :52-56
[6]  
Doi M., 1986, THEORY POLYM DYNAMIC
[7]   BROWNIAN DYNAMICS WITH HYDRODYNAMIC INTERACTIONS [J].
ERMAK, DL ;
MCCAMMON, JA .
JOURNAL OF CHEMICAL PHYSICS, 1978, 69 (04) :1352-1360
[8]   Microchannel flow of a macromolecular suspension [J].
Fan, XJ ;
Phan-Thien, N ;
Yong, NT ;
Wu, XH ;
Xu, D .
PHYSICS OF FLUIDS, 2003, 15 (01) :11-21
[9]   CONSTRUCTION OF LANGEVIN FORCES IN THE SIMULATION OF HYDRODYNAMIC INTERACTION [J].
FIXMAN, M .
MACROMOLECULES, 1986, 19 (04) :1204-1207
[10]  
Frisch U., 1987, Complex Systems, V1, P649